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author:

Xiong, Xiangyu (Xiong, Xiangyu.) [1] | Sun, Yue (Sun, Yue.) [2] | Liu, Xiaohong (Liu, Xiaohong.) [3] | Lam, Chan-Tong (Lam, Chan-Tong.) [4] | Tong, Tong (Tong, Tong.) [5] (Scholars:童同) | Chen, Hao (Chen, Hao.) [6] | Gao, Qinquan (Gao, Qinquan.) [7] (Scholars:高钦泉) | Ke, Wei (Ke, Wei.) [8] | Tan, Tao (Tan, Tao.) [9]

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Abstract:

Although current data augmentation methods are successful to alleviate the data insufficiency, conventional augmentation are primarily intra-domain while advanced generative adversarial networks (GANs) generate images remaining uncertain, particularly in small-scale datasets. In this paper, we propose a parameterized GAN (ParaGAN) that effectively controls the changes of synthetic samples among domains and highlights the attention regions for downstream classification. Specifically, ParaGAN incorporates projection distance parameters in cyclic projection and projects the source images to the decision boundary to obtain the class-difference maps. Our experiments show that ParaGAN can consistently outperform the existing augmentation methods with explainable classification on two small-scale medical datasets. © 2024 IEEE.

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  • [ 1 ] [Xiong, Xiangyu]Faculty of Applied Sciences, Macao Polytechnic University, China
  • [ 2 ] [Sun, Yue]Faculty of Applied Sciences, Macao Polytechnic University, China
  • [ 3 ] [Liu, Xiaohong]John Hopcroft Center (JHC) for Computer Science, Shanghai Jiao Tong University, China
  • [ 4 ] [Lam, Chan-Tong]Faculty of Applied Sciences, Macao Polytechnic University, China
  • [ 5 ] [Tong, Tong]College of Physics and Information Engineering, Fuzhou University, China
  • [ 6 ] [Chen, Hao]Department of Mathware, Jiangsu JITRI Sioux Technologies Co., Ltd., China
  • [ 7 ] [Gao, Qinquan]College of Physics and Information Engineering, Fuzhou University, China
  • [ 8 ] [Ke, Wei]Faculty of Applied Sciences, Macao Polytechnic University, China
  • [ 9 ] [Tan, Tao]Faculty of Applied Sciences, Macao Polytechnic University, China

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ISSN: 1520-6149

Year: 2024

Page: 7310-7314

Language: English

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ESI Highly Cited Papers on the List: 0 Unfold All

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30 Days PV: 2

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